Optimized Phosphorus Inputs Enhances Maize Yield and Humus Stabilization in Albic Soils of Northeast China: Evidence from Three-Year Field Trial
Abstract
1. Introduction
2. Materials and Methods
2.1. Study Site
2.2. Experimental Materials
2.3. Experimental Design
2.4. Extraction of Humic Components and Determination of Their C Contents
2.5. 3D-EEM of DOM
2.6. Statistical Analysis
3. Results
3.1. 3D-EEM Fluorescence Spectra of DOM
3.2. Soil Nutrient Properties and Maize Yield
3.3. Variations in CWSS, CHE, CHA, and CHM, CHA/CFA Ratio and E4/E6 Ratio of HA
3.4. CHMi, CHMc, CHMr, HMi/HMc and (HMi+HMc)/HM, E4/E6 of HMi and HMc
3.5. Atomic Molar Ratios and FTIR Spectra of HA
3.6. Thermal Stability of HA Assessed by DTA Analysis
3.7. PCA and Pearson Correlation Analysis of Key Parameters in Albic Soil-Maize Fields Under Different P Application Rates
4. Discussion
4.1. Effects of Different P Application Rates on Soil Nutrient Properties and Maize Yield
4.2. Effects of Different P Application Rates on CDOM and Related Fluorescence Indices
4.3. Effect of Different P Application Rates on HS Fractions
4.4. Effects of Different P Application Rates on Molecular Structure and Thermal Properties of HA
4.5. Comprehensive Evaluation
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Swapna, G.; Jadesha, G.; Mahadevu, P. Sweet corn–a future healthy human nutrition food. Int. J. Curr. Microbiol. Appl. Sci. 2020, 9, 3859–3865. [Google Scholar] [CrossRef]
- Dong, F.; Zhang, Z.; Jiang, F.; Wang, J.; Wang, Q.; Li, L.; Peng, X. Spatial distribution of the buried depth and thickness of albic soil albic layer in Sanjiang plain and its influencing factors. Acta Pedofil. Sin. 2025, 62, 362–374. (In Chinese) [Google Scholar]
- Xiu, L.; Zhang, W.; Sun, Y.; Wu, D.; Meng, J.; Chen, W. Effects of biochar and straw returning on the key cultivation limitations of albic soil and soybean growth over 2 years. Catena 2019, 173, 481–493. [Google Scholar] [CrossRef]
- Gerke, J. The central role of soil organic matter in soil fertility and carbon storage. Soil Syst. 2022, 6, 33. [Google Scholar] [CrossRef]
- Devika, J.; Rani, B.; Gladis, R.; Priya, G.; Sarada, S. Impact of humic substances on carbon sequestration and soil resilience. Int. J. Environ. Clim. Change 2025, 15, 387–402. [Google Scholar] [CrossRef]
- Xu, X.; Mi, Q.; Liu, D.; Fu, S.; Wang, X.; Guo, D.; Zhou, W. Effect of phosphorus fertilizer rate on phosphorus fractions contents in calcareous soil and phosphorus accumulation amount in crop. Chin. J. Eco-Agric. 2021, 29, 1857–1866. (In Chinese) [Google Scholar]
- Gao, J.; Wang, L.; Luo, J.; Gao, H.; Qiu, W.; Li, Q.; Zhang, X.; Zhu, P.; Peng, C.; Jiao, Y.; et al. Long-term fertilizer application induces changes in carbon storage and distribution, and the consequent color of black Soil. J. Soil Sci. Plant Nutr. 2024, 24, 905–913. [Google Scholar] [CrossRef]
- Zhang, J.; Wang, J.; An, T.; Wei, D.; Chi, F.; Zhou, B. Effects of long-term fertilization on soil humic acid composition and structure in black Soil. PLoS ONE 2017, 12, e0186918. [Google Scholar] [CrossRef] [PubMed]
- Li, Z.; Chi, F.; Zhang, J.; Kuang, E.; Su, Q. Effects of long-term localized fertilization on nutrient balance and dynamic change of humic molecular structure in black soil. Spectrosc. Spect. Anal. 2018, 38, 3875–3882. (In Chinese) [Google Scholar]
- Zhou, Y.; Selvam, A.; Wong, J.W.C. Evaluation of humic substances during co-composting of food waste, sawdust and Chinese medicinal herbal residues. Bioresour. Technol. 2014, 168, 229–234. [Google Scholar] [CrossRef]
- Wang, D.; Mao, Y.; Mai, L.; Yu, Z.; Lin, J.; Li, Q.; Yuan, J.; Li, G. Insight into humification of mushroom residues under addition of Rich-N sources: Comparing key molecular evolution processes using EEM-PARAFAC and 2D-FTIRCOS analysis. J. Environ. Manag. 2023, 329, 117079. [Google Scholar] [CrossRef]
- Qiu, Q.; Wu, L.; Ouyang, Z.; Li, B.; Xu, Y.; Wu, S.; Gregorich, E.G. Effects of plant-derived dissolved organic matter (DOM) on soil CO2 and N2O emissions and soil carbon and nitrogen sequestrations. Appl. Soil Ecol. 2015, 96, 122–130. [Google Scholar] [CrossRef]
- Liu, X.; Cao, H.; Miao, C.; Li, L.; Zhou, H.; Lv, Y. Three-dimensional fluorescence spectra of dissolved organic matter in Fluvo-Aquic soil profile under long term composting treatment. Spectrosc. Spectr. Anal. 2023, 43, 674–684. (In Chinese) [Google Scholar]
- Liu, B.; Wu, R.; Xue, B.; Gao, R.; An, H.; Liu, L.; Ndzana, G.M.; Du, L.; Kamran, M. Effects of nutrient addition on the composition and chemical characteristics of soil dissolved organic matter in a desert steppe in northern China. Land Degrad. Dev. 2023, 35, 1365–1380. [Google Scholar] [CrossRef]
- Wilson, H.F.; Xenopoulos, M.A. Effects of agricultural land use on the composition of fluvial dissolved organic matter. Nat. Geosci. 2009, 2, 37–41. [Google Scholar] [CrossRef]
- Li, Q.; Guo, X.; Chen, L.; Li, Y.; Yuan, D.; Dai, B.; Wang, S. Investigating the spectral characteristic and humification degree of dissolved organic matter in saline-alkali soil using spectroscopic techniques. Front. Earth Sci.-PRC 2017, 11, 76–84. [Google Scholar] [CrossRef]
- Hu, T.; Zheng, K.; Luo, M.; Xie, J.; Qi, Y.; Xu, Y.; Chen, D. Probing the optical and molecular properties of sedimentary dissolved organic matter in the laminated diatom mats from the southern Mariana Trench. Glob. Planet. Change 2024, 234, 104386. [Google Scholar] [CrossRef]
- Kagan, K.; Goraj, W.; Kuźniar, A.; Kruczyńska, A.; Sochaczewska, A.; Słomczewski, A.; Wolińska, A. Exploring the synergy between humic acid substances, dehydrogenase activity and soil fertility. Agronomy 2024, 14, 1031. [Google Scholar] [CrossRef]
- Balík, J.; Suran, P.; Černý, J.; Sedlář, O.; Kulhánek, M.; Procházková, S. Changes in soil organic matter content and quality after application of different organic and mineral fertilisers in 27 years long-term field experiments on luvisol. Front. Soil Sci. 2025, 5, 1540137. [Google Scholar] [CrossRef]
- Fan, C.; Song, X.; Chang, J.; Wang, Y.; Zhang, J. Chemical compositions and copper (II) adsorption properties of sequentially extracted humic substances, including different humin fractions. Fresenius Environ. Bull. 2018, 27, 6485–6499. [Google Scholar]
- Li, K.; Dou, S.; Han, X. Distribution characteristics of humin in soil aggregate without fertilization for long time. J. Jilin Agric. Sci. 2013, 38, 52–54, 80. (In Chinese) [Google Scholar]
- Abd El-Rahim, M.G.; Dou, S.; Althobiti, R.A.; Ali, G.A. Split application of biochar for humic acids structural characteristics enhancement during chicken manure composting. Bull. Chem. Soc. Ethiop. 2025, 39, 1493–1508. [Google Scholar] [CrossRef]
- Yu, H.; Li, P.; Bo, G.; Shen, G. Studies on the humic acid structure and microbial nutrient restriction mechanism during organic-inorganic co-composting. J. Environ. Manag. 2024, 353, 120186. [Google Scholar] [CrossRef]
- Li, X.; Xing, M.; Yang, J.; Zhao, L.; Dai, X. Organic matter humification in vermifiltration process for domestic sewage sludge treatment by excitation–emission matrix fluorescence and Fourier transform infrared spectroscopy. J. Hazard. Mater. 2013, 261, 491–499. [Google Scholar] [CrossRef]
- Akbarbaglu, Z.; Ramezani, A.; Rafati, A.; Mazloomi, N.; Jafari, S.M.; Hesarinejad, M.A.; Khaleghi, F.; Sarabandi, K. Bio-functional, antibacterial, ACE and DPP-IV inhibitory activities of thyme, flax and apple pollen-peptides by controlled enzymolysis. J. Agric. Food Res. 2025, 19, 101617. [Google Scholar] [CrossRef]
- Li, H.H.; Zhang, T.; Shaheen, S.M.; Abdelrahman, H.; Ali, E.F.; Bolan, N.S.; Li, G.X.; Rinklebe, J. Microbial inoculants and struvite improved organic matter humification and stabilized phosphorus during swine manure composting: Multivariate and multiscale investigations. Bioresour. Technol. 2022, 351, 126976. [Google Scholar] [CrossRef]
- Zhang, X.; Dou, S.; Ndzelu, B.S.; Guan, X.W.; Zhang, B.Y.; Bai, Y. Effects of different corn straw amendments on humus composition and structural characteristics of humic acid in black soil. Commun. Soil Sci. Plant Anal. 2019, 51, 107–117. [Google Scholar] [CrossRef]
- Gonet, S.S.; Cieslewicz, J. Differential thermal analysis of sedimentary humic acids in the light of their origin. Environ. Int. 1998, 24, 629–636. [Google Scholar] [CrossRef]
- Zhang, W.; Wang, Q.; Wu, Q.; Zhang, S.; Zhu, P.; Peng, C.; Huang, S.; Wang, B.; Zhang, H. The response of soil Olsen-P to the P budgets of three typical cropland soil types under long-term fertilization. PLoS ONE 2020, 15, e0230178. [Google Scholar] [CrossRef]
- Zhang, S.; Yang, X.; Hsu, L.; Liu, Y.; Wang, S.; White, J.R.; Shaheen, S.M.; Chen, Q.; Rinklebe, J. Soil acidification enhances the mobilization of phosphorus under anoxic conditions in an agricultural soil: Investigating the potential for loss of phosphorus to water and the associated environmental risk. Sci. Total Environ. 2021, 793, 148531. [Google Scholar] [CrossRef] [PubMed]
- Du, L.; Zhang, Z.; Chen, Y.; Wang, Y.; Zhou, C.; Yang, H.; Zhang, W. Heterogeneous impact of soil acidification on crop yield reduction and its regulatory variables: A global meta-analysis. Field Crops Res. 2024, 319, 109643. [Google Scholar] [CrossRef]
- Chen, Y.; Sun, T.T.; Qian, H.Y.; Fan, J.B.; He, Y.Q.; Sun, B. Nitrogen mineralization as a result of phosphorus supplementation in long-term phosphate deficient soil. Appl. Soil Ecol. 2016, 106, 24–32. [Google Scholar] [CrossRef]
- Grant, C.; Rose, L.J.; Van Zwieten, L.; Rose, M.T. Low pH of a high carbon gleysol contributes to nitrification inhibition resulting in low N2O soil emissions and limited effectiveness of nitrification inhibitors. Soil Syst. 2020, 4, 75. [Google Scholar]
- Miltner, A.; Zheng, T.; Liang, C.; Kästner, M. Microbial necromass as a source for soil organic matter formation-implications for soil processes. In Proceedings of the EGU General Assembly 2020, Online, 4–8 May 2020. EGU2020-13094. [Google Scholar]
- Li, Y.; Xiao, M.; Wei, L.; Liu, Q.; Zhu, Z.; Yuan, H.; Wu, J.; Yuan, J.; Wu, X.; Kuzyakov, Y.; et al. Bacterial necromass determines the response of mineral-associated organic matter to elevated CO2. Biol. Fert. Soils 2024, 60, 327–340. [Google Scholar]
- Camenzind, T.; Mason-Jones, K.; Mansour, I.; Rillig, M.C.; Lehmann, J. Formation of necromass-derived soil organic carbon determined by microbial death pathways. Nat. Geosci. 2023, 16, 115–122. [Google Scholar] [CrossRef]
- Zhang, Q.; Li, X.; Liu, J.; Liu, J.; Han, L.; Wang, X.; Liu, H.; Xu, M.; Yang, G.; Ren, C.; et al. The contribution of microbial necromass carbon to soil organic carbon in soil aggregates. Appl. Soil Ecol. 2023, 190, 104985. [Google Scholar] [CrossRef]
- Grant, C.; Bittman, S.; Montreal, M.; Plenchette, C.; Morel, C. Soil and fertilizer phosphorus: Effects on plant P supply and mycorrhizal development. Can. J. Plant Sci. 2005, 85, 3–14. [Google Scholar] [CrossRef]
- Jamir, T.I.; Sharma, Y.K.; Uchoi, A. Nutrient composition, uptake, yield and phosphorus use efficiency of black gram as influenced by soil amendments and phosphorus in acidic soil of nagaland. Agric. Sci. Dig. 2025, 45, 606–612. [Google Scholar]
- Forstner, S.J.; Wechselberger, V.; Stecher, S.; Müller, S.; Keiblinger, K.M.; Wanek, W.; Schleppi, P.; Gundersen, P.; Tatzber, M.; Gerzabek, M.H.; et al. Resistant soil microbial communities show signs of increasing phosphorus limitation in two temperate forests after long-term nitrogen addition. Front. For. Glob. Change 2019, 2, 73. [Google Scholar]
- Lidbury, I.D.E.A.; Scanlan, D.J.; Murphy, A.R.J.; Christie-Oleza, J.A.; Aguilo-Ferretjans, M.M.; Hitchcock, A.; Daniell, T.J. A widely distributed phosphate-insensitive phosphatase presents a route for rapid organophosphorus remineralization in the biosphere. Proc. Natl. Acad. Sci. USA 2022, 119, e2118122119. [Google Scholar]
- Lyu, L.; Liu, G.; Shang, Y.; Wen, Z.; Hou, J.; Song, K. Characterization of dissolved organic matter (DOM) in an urbanized watershed using spectroscopic analysis. Chemosphere 2021, 277, 130210. [Google Scholar] [CrossRef]
- Zhang, Z.J.; Liang, L.Y.; Huang, E. Phosphorus fertilization alters complexity of paddy soil dissolved organic matter. J. Integr. Agric. 2020, 19, 2301–2312. [Google Scholar] [CrossRef]
- Wang, X.; Han, Y.; Cao, Y.; Ni, Y.; Wang, D.; Luan, Y. The formation, stabilization mechanism, and environmental impacts of persistent free radicals in soil humic substances. Agronomy 2025, 15, 602. [Google Scholar] [CrossRef]
- Sierra, M.M.D.; Giovanela, M.; Parlanti, E.; Soriano-Sierra, E.J. Fluorescence fingerprint of fulvic and humic acids from varied origins as viewed by single-scan and excitation/emission matrix techniques. Chemosphere 2005, 58, 715–733. [Google Scholar] [CrossRef]
- Kang, S.; Xing, B. Humic acid fractionation upon sequential adsorption onto goethite. Langmuir 2008, 24, 2525–2531. [Google Scholar] [CrossRef]
- Liu, X.; Zhang, Y.; Wang, Z.; Chen, Z. The contribution of organic and chemical fertilizers on the pools and availability of phosphorus in agricultural soils based on a meta-analysis. Eur. J. Agron. 2024, 156, 127144. [Google Scholar] [CrossRef]
- Rawat, P.; Das, S.; Shankhdhar, D.; Shankhdhar, S.C. Phosphate-solubilizing microorganisms: Mechanism and their role in phosphate solubilization and uptake. J. Soil Sci. Plant Nutr. 2020, 21, 49–68. [Google Scholar] [CrossRef]
- Ali, J.; Li, Y.; Wang, X.; Zhao, J.; Xi, N.; Zhang, Z.; Xia, X. Climate-zone-dependent effect mechanism of humic acid and fulvic acid extracted from river sediments on aggregation behavior of graphene oxide. Sci. Total Environ. 2020, 721, 137682. [Google Scholar] [CrossRef] [PubMed]
- Chen, Y.; Senesi, N.; Schnitzer, M. Information provided on humic substances by E4/E6 ratios. Soil Sci. Soc. Am. J. 1977, 41, 352–358. [Google Scholar] [CrossRef]
- Dai, D.; Sun, H.; Huang, Y.; Gao, J.; Song, B.; Gao, H.; Lu, B.; Wang, S. Distribution patterns of humus and mineral composition in dark-brown, meadow, and paddy soils in northeast China. Agronomy 2025, 15, 2108. [Google Scholar] [CrossRef]
- Antelo, J.; Arce, F.; Avena, M.; Fiol, S.; López, R.; Macías, F. Adsorption of a soil humic acid at the surface of goethite and its competitive interaction with phosphate. Geoderma 2007, 138, 12–19. [Google Scholar] [CrossRef]
- Guardado, I.; Urrutia, O.; García-Mina, J.M. Size distribution, complexing capacity, and stability of phosphate–metal–humic complexes. J. Agric. Food Chem. 2006, 55, 408–413. [Google Scholar] [CrossRef]
- Cui, Y.; Moorhead, D.L.; Wang, X.; Xu, M.; Wang, X.; Wei, X.; Zhu, Z.; Ge, T.; Peng, S.; Zhu, B.; et al. Decreasing microbial phosphorus limitation increases soil carbon release. Geoderma 2022, 419, 115868. [Google Scholar] [CrossRef]
- Hill, H. Competitive sorption between glyphosate and inorganic phosphate on clay minerals and low organic matter soils. J. Radioanal. Nucl. Chem. 2001, 249, 385–390. [Google Scholar] [CrossRef]
- Almendros, G.; González-Pérez, J.A. Soil organic carbon sequestration mechanisms and the chemical nature of soil organic matter—A review. Sustainability 2025, 17, 6689. [Google Scholar] [CrossRef]
- Sinsabaugh, R.L. Phenol oxidase, peroxidase and organic matter dynamics of soil. Soil Biol. Biochem. 2010, 42, 391–404. [Google Scholar] [CrossRef]
- Wang, J.; Wei, Z.; Zhao, Y.; Xia, X.; Cui, J.; Li, S. The strategies for improving phosphorus-use efficiency in plant cell. Soil Sci. Plant Nutr. 2024, 71, 53–60. [Google Scholar] [CrossRef]
- Iwata, T.; Watanabe, A.; Iseki, M.; Watanabe, M.; Kandori, H. Strong donation of the hydrogen bond of tyrosine during photoactivation of the BLUF domain. J. Phys. Chem. Lett. 2011, 2, 1015–1019. [Google Scholar] [CrossRef]
- Li, T.; Shi, F.; Ju, Y.; Ding, Z. Facet-dependent adsorption of phosphate on hematite nanoparticles: Role of singly coordinated hydroxyl. Water 2023, 15, 4070. [Google Scholar] [CrossRef]
- Zhai, Y.; Zhang, L.; Gao, M.; Zhang, X.; Ruan, Z.; Zhao, Y.; Wei, C.; Ma, Y.; Chen, W. Effects of P fertilizer application on nitrogen, phosphorus, potassium content as well as acid phosphatase and polyphenol oxidase activities in flue-cured tobacco. Soil Fertil. Sci. China 2014, 2014, 53–57. [Google Scholar]
- Mori, T.; Ishizuka, S.; Konda, R.; Wicaksono, A.; Heriyanto, J.; Hardjono, A.; Ohta, S. Phosphorus addition reduced microbial respiration during the decomposition of Acacia mangium litter in South Sumatra, Indonesia. Tropics 2015, 24, 113–118. [Google Scholar] [CrossRef]
- Matsumoto, K.; Kawamura, K.; Uchida, M.; Shibata, Y. Radiocarbon content and stable carbon isotopic ratios of individual fatty acids in subsurface soil: Implication for selective microbial degradation and modification of soil organic matter. Geochem. J. 2007, 41, 483–492. [Google Scholar] [CrossRef]
- Aguiar, D.; Melo, V.F.; Nogueira, M.A.; Corrêa, R.S. The role of microbial mechanisms on the availability of soil phosphorus from fixed and structural mineral fractions. J. Soil Sci. Plant. Nut. 2024, 24, 8192–8207. [Google Scholar] [CrossRef]
- Gajda, M.; Gajda, Ł.; Kupka, T.; Kar, T. Local aromaticity in polyacenes manifested by individual proton and carbon shieldings: DFT mapping of aromaticity. Magn. Reson. Chem. 2019, 58, 145–153. [Google Scholar] [CrossRef]
- Wang, C.; Li, T.; Dippold, M.A.; Guggenberger, G.; Kuzyakov, Y.; Banfield, C.C.; Muhr, J.; Dorodnikov, M. Alternate wetting-drying had no preferences for rice P uptake but increased microbial P allocation to phospholipids: Evidence from dual 32P and 33P labeling. Soil Biol. Biochem. 2024, 191, 109359. [Google Scholar] [CrossRef]
- Olusegun, O.S. Nitrogen (N) and phosphorus (P) fertilizer application on maize (Zea mays L.) growth and yield at Ado-Ekiti, South-west, Nigeria. Afr. J. Agric. Res. 2015, 6, 22–29. [Google Scholar] [CrossRef]
- Lu, X.Q.; Hanna, J.V.; Johnson, W.D. Evidence of chemical pathways of humification: A study of aquatic humic substances heated at various temperatures. Chem. Geol. 2001, 177, 249–264. [Google Scholar] [CrossRef]
- Xing, B.; Ouyang, M.; Graham, N.; Yu, W. Enhancement of phosphate adsorption during mineral transformation of natural siderite induced by humic acid: Mechanism and application. Chem. Eng. J. 2020, 393, 124730. [Google Scholar] [CrossRef]
- Tipping, E.; Cooke, D. The effects of adsorbed humic substances on the surface charge of goethite (α-FeOOH) in freshwaters. Geochim. Cosmochim. Acta 1982, 46, 75–80. [Google Scholar] [CrossRef]
- Kundu, A.; Fingerhut, B.P.; Elsaesser, T. Hydration structure and dynamics of phosphoric acid and its anions—Ultrafast 2D-IR spectroscopy and ab initio molecular dynamics simulations. J. Chem. Phys 2024, 161, 084503. [Google Scholar] [CrossRef]
- Wang, G.; Dai, Y.; Yang, H.; Xiong, Q.; Wang, K.; Zhou, J.; Li, Y.; Wang, S. A review of recent advances in biomass pyrolysis. Energy Fuels 2020, 34, 15557–15578. [Google Scholar] [CrossRef]







| Treatments | CDOM (mg L−1) | FI | BIX | HIX |
|---|---|---|---|---|
| P0 | 0.270 ± 0.01 c | 1.91 ± 0.07 ab | 0.660 ± 0.01 b | 2.88 ± 0.25 c |
| LP | 0.290 ± 0.01 b | 2.00 ± 0.06 a | 0.660 ± 0.01 b | 6.52 ± 0.28 b |
| MP | 0.350 ± 0.02 a | 2.05 ± 0.09 a | 0.680 ± 0.01 a | 6.80 ± 0.31 ab |
| HP | 0.350 ± 0.01 a | 1.69 ± 0.08 c | 0.660 ± 0.01 b | 7.32 ± 0.26 a |
| Treatments | Alkali-Hydrolyzed N (mg kg−1) | Available P (mg kg−1) | Available K (mg kg−1) | SOM (g kg−1) | pH Value | Maize Yield (kg ha−1) |
|---|---|---|---|---|---|---|
| P0 | 81.1 ± 3.2 d | 16.0 ± 1.1 d | 256.0 ± 12.1 a | 9.8 ± 0.3 c | 6.26 ± 0.05 a | 11,571.6 ± 227 d |
| LP | 88.0 ± 2.8 c | 19.4 ± 1.3 c | 295.0 ± 15.3 b | 11.7 ± 0.5 b | 6.18 ± 0.04 b | 11,858.1± 195 c |
| MP | 98.4 ± 2.1 b | 20.6 ± 0.9 b | 172.4 ± 10.7 c | 14.8 ± 0.4 a | 6.11 ± 0.03 c | 12,257.1 ± 318 a |
| HP | 100.0 ± 1.9 a | 23.3 ± 1.2 a | 149.6 ± 11.5 d | 13.3 ± 0.6 b | 5.68 ± 0.06 d | 12,140.6 ± 274 b |
| Treatments | H/C Ratio | C/N Ratio | O/C Ratio |
|---|---|---|---|
| P0 | 2.20 ± 0.07 a | 8.32 ± 0.45 ab | 0.770 ± 0.03 c |
| LP | 2.06 ± 0.05 ab | 7.44 ± 0.30 c | 0.770 ± 0.02 c |
| MP | 1.72 ± 0.03 c | 8.70 ± 0.39 a | 0.880 ± 0.02 b |
| HP | 2.00 ± 0.06 b | 9.13 ± 0.48 a | 0.850 ± 0.01 a |
| Treatments | 3367–3412 | 2923–2927 a | 2856–2859 b | 1717–1720 c | 1631–1638 d | 1358–1388 | 1205–1242 | 1033–1045 | (a + b)/c | (a + b)/d |
|---|---|---|---|---|---|---|---|---|---|---|
| P0 | 29.0 | 6.40 | 2.10 | 5.00 | 15.2 | 9.30 | 6.70 | 26.2 | 1.70 | 0.560 |
| LP | 23.3 | 7.60 | 1.50 | 4.70 | 16.4 | 11.3 | 11.4 | 23.7 | 1.94 | 0.560 |
| MP | 37.3 | 5.10 | 2.90 | 3.40 | 17.5 | 9.00 | 6.40 | 18.3 | 2.35 | 0.460 |
| HP | 37.2 | 5.60 | 3.00 | 1.40 | 18.2 | 10.8 | 4.30 | 19.4 | 6.14 | 0.470 |
| DTA (mJ mg−1) | Weight Lost (mg) | |||||||
|---|---|---|---|---|---|---|---|---|
| Treatments | Endothermic Heat | Exothermic Heat | H/M | Endothermic Heat | Exothermic Heat | H/M | ||
| Low | Medium | High | Low | Medium | High | |||
| P0 | 2.90 | 7.87 | 6.05 | 0.770 | 0.250 | 2.66 | 6.05 | 2.27 |
| LP | 6.91 | 13.9 | 13.3 | 0.950 | 2.47 | 5.35 | 2.16 | 0.40 |
| MP | 2.69 | 16.0 | 19.1 | 1.19 | 0.170 | 3.78 | 4.54 | 1.20 |
| HP | 11.2 | 4.88 | 8.64 | 1.77 | 2.54 | 3.50 | 5.56 | 1.59 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Gao, J.; Chen, H.; Dai, D.; Gao, H.; Wang, J.; Wang, M.; Peng, J.; Wang, N. Optimized Phosphorus Inputs Enhances Maize Yield and Humus Stabilization in Albic Soils of Northeast China: Evidence from Three-Year Field Trial. Agronomy 2026, 16, 469. https://doi.org/10.3390/agronomy16040469
Gao J, Chen H, Dai D, Gao H, Wang J, Wang M, Peng J, Wang N. Optimized Phosphorus Inputs Enhances Maize Yield and Humus Stabilization in Albic Soils of Northeast China: Evidence from Three-Year Field Trial. Agronomy. 2026; 16(4):469. https://doi.org/10.3390/agronomy16040469
Chicago/Turabian StyleGao, Jingwei, Houfu Chen, Donghui Dai, Haoyu Gao, Jingjing Wang, Mingshuo Wang, Jiawen Peng, and Nan Wang. 2026. "Optimized Phosphorus Inputs Enhances Maize Yield and Humus Stabilization in Albic Soils of Northeast China: Evidence from Three-Year Field Trial" Agronomy 16, no. 4: 469. https://doi.org/10.3390/agronomy16040469
APA StyleGao, J., Chen, H., Dai, D., Gao, H., Wang, J., Wang, M., Peng, J., & Wang, N. (2026). Optimized Phosphorus Inputs Enhances Maize Yield and Humus Stabilization in Albic Soils of Northeast China: Evidence from Three-Year Field Trial. Agronomy, 16(4), 469. https://doi.org/10.3390/agronomy16040469

